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1.
Mol Cell ; 77(1): 180-188.e9, 2020 01 02.
Artículo en Inglés | MEDLINE | ID: mdl-31630969

RESUMEN

The mitochondrial proteome is built mainly by import of nuclear-encoded precursors, which are targeted mostly by cleavable presequences. Presequence processing upon import is essential for proteostasis and survival, but the consequences of dysfunctional protein maturation are unknown. We find that impaired presequence processing causes accumulation of precursors inside mitochondria that form aggregates, which escape degradation and unexpectedly do not cause cell death. Instead, cells survive via activation of a mitochondrial unfolded protein response (mtUPR)-like pathway that is triggered very early after precursor accumulation. In contrast to classical stress pathways, this immediate response maintains mitochondrial protein import, membrane potential, and translation through translocation of the nuclear HMG-box transcription factor Rox1 to mitochondria. Rox1 binds mtDNA and performs a TFAM-like function pivotal for transcription and translation. Induction of early mtUPR provides a reversible stress model to mechanistically dissect the initial steps in mtUPR pathways with the stressTFAM Rox1 as the first line of defense.


Asunto(s)
Mitocondrias/metabolismo , Proteínas Represoras/metabolismo , Proteínas de Saccharomyces cerevisiae/metabolismo , Factores de Transcripción/metabolismo , Respuesta de Proteína Desplegada/fisiología , Muerte Celular/fisiología , Núcleo Celular/metabolismo , ADN Mitocondrial/metabolismo , Potenciales de la Membrana/fisiología , Biosíntesis de Proteínas/fisiología , Saccharomyces cerevisiae/metabolismo , Transcripción Genética/fisiología
2.
EMBO Rep ; 25(2): 813-831, 2024 Feb.
Artículo en Inglés | MEDLINE | ID: mdl-38233718

RESUMEN

Autophagy is initiated by the assembly of multiple autophagy-related proteins that form the phagophore assembly site where autophagosomes are formed. Atg13 is essential early in this process, and a hub of extensive phosphorylation. How these multiple phosphorylations contribute to autophagy initiation, however, is not well understood. Here we comprehensively analyze the role of phosphorylation events on Atg13 during nutrient-rich conditions and nitrogen starvation. We identify and functionally characterize 48 in vivo phosphorylation sites on Atg13. By generating reciprocal mutants, which mimic the dephosphorylated active and phosphorylated inactive state of Atg13, we observe that disrupting the dynamic regulation of Atg13 leads to insufficient or excessive autophagy, which are both detrimental to cell survival. We furthermore demonstrate an involvement of Atg11 in bulk autophagy even during nitrogen starvation, where it contributes together with Atg1 to the multivalency that drives phase separation of the phagophore assembly site. These findings reveal the importance of post-translational regulation on Atg13 early during autophagy initiation, which provides additional layers of regulation to control bulk autophagy activity and integrate cellular signals.


Asunto(s)
Autofagia , Proteínas de Saccharomyces cerevisiae , Fosforilación , Autofagia/fisiología , Proteínas Relacionadas con la Autofagia/genética , Proteínas Relacionadas con la Autofagia/metabolismo , Transducción de Señal , Nitrógeno , Proteínas de Saccharomyces cerevisiae/genética , Proteínas de Saccharomyces cerevisiae/metabolismo
3.
EMBO J ; 40(19): e108863, 2021 10 01.
Artículo en Inglés | MEDLINE | ID: mdl-34459017

RESUMEN

Autophagy is a core molecular pathway for the preservation of cellular and organismal homeostasis. Pharmacological and genetic interventions impairing autophagy responses promote or aggravate disease in a plethora of experimental models. Consistently, mutations in autophagy-related processes cause severe human pathologies. Here, we review and discuss preclinical data linking autophagy dysfunction to the pathogenesis of major human disorders including cancer as well as cardiovascular, neurodegenerative, metabolic, pulmonary, renal, infectious, musculoskeletal, and ocular disorders.


Asunto(s)
Autofagia , Susceptibilidad a Enfermedades , Animales , Autofagia/efectos de los fármacos , Autofagia/genética , Autofagia/inmunología , Biomarcadores , Regulación de la Expresión Génica , Predisposición Genética a la Enfermedad , Homeostasis , Interacciones Huésped-Patógeno , Humanos , Especificidad de Órganos , Transducción de Señal
4.
J Cell Sci ; 136(3)2023 02 01.
Artículo en Inglés | MEDLINE | ID: mdl-36644903

RESUMEN

Autophagy is a catabolic process during which cytosolic material is enwrapped in a newly formed double-membrane structure called the autophagosome, and subsequently targeted for degradation in the lytic compartment of the cell. The fusion of autophagosomes with the lytic compartment is a tightly regulated step and involves membrane-bound SNARE proteins. These play a crucial role as they promote lipid mixing and fusion of the opposing membranes. Among the SNARE proteins implicated in autophagy, the essential SNARE protein YKT6 is the only SNARE protein that is evolutionarily conserved from yeast to humans. Here, we show that alterations in YKT6 function, in both mammalian cells and nematodes, produce early and late autophagy defects that result in reduced survival. Moreover, mammalian autophagosomal YKT6 is phospho-regulated by the ULK1 kinase, preventing premature bundling with the lysosomal SNARE proteins and thereby inhibiting autophagosome-lysosome fusion. Together, our findings reveal that timely regulation of the YKT6 phosphorylation status is crucial throughout autophagy progression and cell survival.


Asunto(s)
Autofagia , Proteínas de Saccharomyces cerevisiae , Animales , Humanos , Proteínas R-SNARE/metabolismo , Fosforilación , Autofagia/genética , Autofagosomas/metabolismo , Proteínas SNARE/genética , Proteínas SNARE/metabolismo , Fusión de Membrana/fisiología , Saccharomyces cerevisiae/metabolismo , Lisosomas/metabolismo , Mamíferos/metabolismo , Homólogo de la Proteína 1 Relacionada con la Autofagia/genética , Homólogo de la Proteína 1 Relacionada con la Autofagia/metabolismo , Péptidos y Proteínas de Señalización Intracelular/metabolismo , Proteínas de Saccharomyces cerevisiae/metabolismo
5.
Mol Cell ; 64(2): 221-235, 2016 10 20.
Artículo en Inglés | MEDLINE | ID: mdl-27768871

RESUMEN

Autophagy is a potent cellular degradation pathway, and its activation needs to be tightly controlled. Cargo receptors mediate selectivity during autophagy by bringing cargo to the scaffold protein Atg11 and, in turn, to the autophagic machinery, including the central autophagy kinase Atg1. Here we show how selective autophagy is tightly regulated in space and time to prevent aberrant Atg1 kinase activation and autophagy induction. We established an induced bypass approach (iPass) that combines genetic deletion with chemically induced dimerization to evaluate the roles of Atg13 and cargo receptors in Atg1 kinase activation and selective autophagy progression. We show that Atg1 activation does not require cargo receptors, cargo-bound Atg11, or Atg13 per se. Rather, these proteins function in two independent pathways that converge to activate Atg1 at the vacuole. This pathway architecture underlies the spatiotemporal control of Atg1 kinase activity, thereby preventing inappropriate autophagosome formation.


Asunto(s)
Proteínas Adaptadoras Transductoras de Señales/genética , Proteínas Relacionadas con la Autofagia/genética , Autofagia/genética , Regulación Fúngica de la Expresión Génica , Proteínas Quinasas/genética , Proteínas de Saccharomyces cerevisiae/genética , Saccharomyces cerevisiae/metabolismo , Proteínas de Transporte Vesicular/genética , Proteínas Adaptadoras Transductoras de Señales/metabolismo , Aminopeptidasas/genética , Aminopeptidasas/metabolismo , Proteínas Relacionadas con la Autofagia/metabolismo , Proteínas Fluorescentes Verdes/genética , Proteínas Fluorescentes Verdes/metabolismo , Fagosomas/metabolismo , Proteínas Quinasas/metabolismo , Multimerización de Proteína , Transporte de Proteínas , Receptores de Superficie Celular/genética , Receptores de Superficie Celular/metabolismo , Proteínas Recombinantes de Fusión/genética , Proteínas Recombinantes de Fusión/metabolismo , Saccharomyces cerevisiae/genética , Proteínas de Saccharomyces cerevisiae/metabolismo , Transducción de Señal , Vacuolas/metabolismo , Proteínas de Transporte Vesicular/metabolismo
6.
J Proteome Res ; 22(10): 3383-3391, 2023 Oct 06.
Artículo en Inglés | MEDLINE | ID: mdl-37712406

RESUMEN

We present an effective, fast, and user-friendly method to reduce codigestion of bead-bound ligands, such as antibodies or streptavidin, in affinity purification-mass spectrometry experiments. A short preincubation of beads with Sulfo-NHS-Acetate leads to chemical acetylation of lysine residues, making ligands insusceptible to Lys-C-mediated proteolysis. In contrast to similar approaches, our procedure offers the advantage of exclusively using nontoxic chemicals and employing mild chemical reaction conditions. After binding of bait proteins to Sulfo-NHS-Acetate treated beads, we employ a two-step digestion protocol with the sequential use of Lys-C protease for on-bead digestion followed by in-solution digestion of the released proteins with trypsin. The implementation of this protocol results in a strong reduction of contaminating ligand peptides, which allows significantly higher amounts of sample to be subjected to LC-MS analysis, improving sensitivity and quantitative accuracy.

7.
PLoS Biol ; 18(9): e3000874, 2020 09.
Artículo en Inglés | MEDLINE | ID: mdl-32997663

RESUMEN

Small membrane proteins represent a largely unexplored yet abundant class of proteins in pro- and eukaryotes. They essentially consist of a single transmembrane domain and are associated with stress response mechanisms in bacteria. How these proteins are inserted into the bacterial membrane is unknown. Our study revealed that in Escherichia coli, the 27-amino-acid-long model protein YohP is recognized by the signal recognition particle (SRP), as indicated by in vivo and in vitro site-directed cross-linking. Cross-links to SRP were also observed for a second small membrane protein, the 33-amino-acid-long YkgR. However, in contrast to the canonical cotranslational recognition by SRP, SRP was found to bind to YohP posttranslationally. In vitro protein transport assays in the presence of a SecY inhibitor and proteoliposome studies demonstrated that SRP and its receptor FtsY are essential for the posttranslational membrane insertion of YohP by either the SecYEG translocon or by the YidC insertase. Furthermore, our data showed that the yohP mRNA localized preferentially and translation-independently to the bacterial membrane in vivo. In summary, our data revealed that YohP engages an unique SRP-dependent posttranslational insertion pathway that is likely preceded by an mRNA targeting step. This further highlights the enormous plasticity of bacterial protein transport machineries.


Asunto(s)
Proteínas de la Membrana/metabolismo , Procesamiento Proteico-Postraduccional , Partícula de Reconocimiento de Señal/metabolismo , Secuencia de Aminoácidos , Escherichia coli/metabolismo , Proteínas de Escherichia coli/química , Proteínas de Escherichia coli/genética , Proteínas de Escherichia coli/metabolismo , Modelos Biológicos , Unión Proteica , Biosíntesis de Proteínas , Transporte de Proteínas , ARN Mensajero/genética , ARN Mensajero/metabolismo , Canales de Translocación SEC/metabolismo
8.
EMBO Rep ; 21(12): e51869, 2020 12 03.
Artículo en Inglés | MEDLINE | ID: mdl-33274589

RESUMEN

Autophagy mediates the degradation of cytoplasmic material. Upon autophagy induction, autophagosomes form a sealed membrane around the cargo and fuse with the lytic compartment to release the cargo for degradation. In order to avoid premature fusion of immature autophagosomal membranes with the lytic compartment, this process needs to be tightly regulated. Several factors mediating autophagosome-vacuole fusion have recently been identified. In budding yeast, autophagosome-vacuole fusion requires the R-SNARE Ykt6 on the autophagosome, together with the three Q-SNAREs Vam3, Vam7, and Vti1 on the vacuole. However, how these SNAREs are regulated during the fusion process is poorly understood. In this study, we investigate the regulation of Ykt6. We found that Ykt6 is directly phosphorylated by Atg1 kinase, which keeps this SNARE in an inactive state. Ykt6 phosphorylation prevents SNARE bundling by disrupting its interaction with the vacuolar SNAREs Vam3 and Vti1, thereby preventing premature autophagosome-vacuole fusion. These findings shed new light on the regulation of autophagosome-vacuole fusion and reveal a further step in autophagy controlled by the Atg1 kinase.


Asunto(s)
Proteínas SNARE , Proteínas de Saccharomyces cerevisiae , Autofagosomas , Autofagia , Fusión de Membrana , Proteínas R-SNARE , Proteínas SNARE/genética , Proteínas de Saccharomyces cerevisiae/genética , Vacuolas
9.
Mol Cell ; 53(3): 471-83, 2014 Feb 06.
Artículo en Inglés | MEDLINE | ID: mdl-24440502

RESUMEN

Bulk degradation of cytoplasmic material is mediated by a highly conserved intracellular trafficking pathway termed autophagy. This pathway is characterized by the formation of double-membrane vesicles termed autophagosomes engulfing the substrate and transporting it to the vacuole/lysosome for breakdown and recycling. The Atg1/ULK1 kinase is essential for this process; however, little is known about its targets and the means by which it controls autophagy. Here we have screened for Atg1 kinase substrates using consensus peptide arrays and identified three components of the autophagy machinery. The multimembrane-spanning protein Atg9 is a direct target of this kinase essential for autophagy. Phosphorylated Atg9 is then required for the efficient recruitment of Atg8 and Atg18 to the site of autophagosome formation and subsequent expansion of the isolation membrane, a prerequisite for a functioning autophagy pathway. These findings show that the Atg1 kinase acts early in autophagy by regulating the outgrowth of autophagosomal membranes.


Asunto(s)
Autofagia/fisiología , Proteínas de la Membrana/metabolismo , Proteínas Quinasas/fisiología , Proteínas de Saccharomyces cerevisiae/metabolismo , Proteínas de Saccharomyces cerevisiae/fisiología , Saccharomyces cerevisiae/citología , Secuencia de Aminoácidos , Aminopeptidasas/química , Aminopeptidasas/metabolismo , Proteínas de Arabidopsis/química , Proteínas de Arabidopsis/metabolismo , Proteínas Relacionadas con la Autofagia , Sitios de Unión , Secuencia de Consenso , Membranas Intracelulares/metabolismo , Espectrometría de Masas , Proteínas de la Membrana/química , Proteínas de la Membrana/fisiología , Datos de Secuencia Molecular , Fagosomas/metabolismo , Fosforilación , Proteínas Quinasas/metabolismo , Saccharomyces cerevisiae/genética , Saccharomyces cerevisiae/metabolismo , Proteínas de Saccharomyces cerevisiae/química
10.
EMBO J ; 36(13): 1811-1836, 2017 07 03.
Artículo en Inglés | MEDLINE | ID: mdl-28596378

RESUMEN

Over the past two decades, the molecular machinery that underlies autophagic responses has been characterized with ever increasing precision in multiple model organisms. Moreover, it has become clear that autophagy and autophagy-related processes have profound implications for human pathophysiology. However, considerable confusion persists about the use of appropriate terms to indicate specific types of autophagy and some components of the autophagy machinery, which may have detrimental effects on the expansion of the field. Driven by the overt recognition of such a potential obstacle, a panel of leading experts in the field attempts here to define several autophagy-related terms based on specific biochemical features. The ultimate objective of this collaborative exchange is to formulate recommendations that facilitate the dissemination of knowledge within and outside the field of autophagy research.


Asunto(s)
Autofagia , Terminología como Asunto , Animales , Caenorhabditis elegans/fisiología , Drosophila melanogaster/fisiología , Redes Reguladoras de Genes , Ratones , Saccharomyces cerevisiae/fisiología
11.
J Cell Sci ; 132(22)2019 11 14.
Artículo en Inglés | MEDLINE | ID: mdl-31649143

RESUMEN

Autophagy is initiated by the formation of a phagophore assembly site (PAS), the precursor of autophagosomes. In mammals, autophagosome formation sites form throughout the cytosol in specialized subdomains of the endoplasmic reticulum (ER). In yeast, the PAS is also generated close to the ER, but always in the vicinity of the vacuole. How the PAS is anchored to the vacuole and the functional significance of this localization are unknown. Here, we investigated the role of the PAS-vacuole connection for bulk autophagy in the yeast Saccharomyces cerevisiae We show that Vac8 constitutes a vacuolar tether that stably anchors the PAS to the vacuole throughout autophagosome biogenesis via the PAS component Atg13. S. cerevisiae lacking Vac8 show inefficient autophagosome-vacuole fusion, and form fewer and smaller autophagosomes that often localize away from the vacuole. Thus, the stable PAS-vacuole connection established by Vac8 creates a confined space for autophagosome biogenesis between the ER and the vacuole, and allows spatial coordination of autophagosome formation and autophagosome-vacuole fusion. These findings reveal that the spatial regulation of autophagosome formation at the vacuole is required for efficient bulk autophagy.


Asunto(s)
Autofagosomas/metabolismo , Proteínas de la Membrana/metabolismo , Proteínas de Saccharomyces cerevisiae/metabolismo , Saccharomyces cerevisiae/metabolismo , Vacuolas/metabolismo , Proteínas de Transporte Vesicular/metabolismo , Autofagia , Saccharomyces cerevisiae/citología
12.
Nature ; 519(7544): 477-81, 2015 Mar 26.
Artículo en Inglés | MEDLINE | ID: mdl-25561175

RESUMEN

Cell growth and proliferation are tightly linked to nutrient availability. The mechanistic target of rapamycin complex 1 (mTORC1) integrates the presence of growth factors, energy levels, glucose and amino acids to modulate metabolic status and cellular responses. mTORC1 is activated at the surface of lysosomes by the RAG GTPases and the Ragulator complex through a not fully understood mechanism monitoring amino acid availability in the lysosomal lumen and involving the vacuolar H(+)-ATPase. Here we describe the uncharacterized human member 9 of the solute carrier family 38 (SLC38A9) as a lysosomal membrane-resident protein competent in amino acid transport. Extensive functional proteomic analysis established SLC38A9 as an integral part of the Ragulator-RAG GTPases machinery. Gain of SLC38A9 function rendered cells resistant to amino acid withdrawal, whereas loss of SLC38A9 expression impaired amino-acid-induced mTORC1 activation. Thus SLC38A9 is a physical and functional component of the amino acid sensing machinery that controls the activation of mTOR.


Asunto(s)
Sistemas de Transporte de Aminoácidos/metabolismo , Aminoácidos/metabolismo , Lisosomas/metabolismo , Complejos Multiproteicos/metabolismo , Serina-Treonina Quinasas TOR/metabolismo , Animales , Línea Celular , Humanos , Diana Mecanicista del Complejo 1 de la Rapamicina , Ratones , Proteínas de Unión al GTP Monoméricas/metabolismo , Nucleótidos/metabolismo
13.
EMBO Rep ; 18(5): 765-780, 2017 05.
Artículo en Inglés | MEDLINE | ID: mdl-28330855

RESUMEN

Deconjugation of the Atg8/LC3 protein family members from phosphatidylethanolamine (PE) by Atg4 proteases is essential for autophagy progression, but how this event is regulated remains to be understood. Here, we show that yeast Atg4 is recruited onto autophagosomal membranes by direct binding to Atg8 via two evolutionarily conserved Atg8 recognition sites, a classical LC3-interacting region (LIR) at the C-terminus of the protein and a novel motif at the N-terminus. Although both sites are important for Atg4-Atg8 interaction in vivo, only the new N-terminal motif, close to the catalytic center, plays a key role in Atg4 recruitment to autophagosomal membranes and specific Atg8 deconjugation. We thus propose a model where Atg4 activity on autophagosomal membranes depends on the cooperative action of at least two sites within Atg4, in which one functions as a constitutive Atg8 binding module, while the other has a preference toward PE-bound Atg8.


Asunto(s)
Autofagosomas/metabolismo , Familia de las Proteínas 8 Relacionadas con la Autofagia/química , Familia de las Proteínas 8 Relacionadas con la Autofagia/metabolismo , Proteínas Relacionadas con la Autofagia/metabolismo , Autofagia , Proteínas Asociadas a Microtúbulos/metabolismo , Proteínas de Saccharomyces cerevisiae/química , Proteínas de Saccharomyces cerevisiae/metabolismo , Familia de las Proteínas 8 Relacionadas con la Autofagia/genética , Proteínas Relacionadas con la Autofagia/genética , Membranas/química , Membranas/metabolismo , Proteínas Asociadas a Microtúbulos/genética , Fagosomas/metabolismo , Fosfatidiletanolaminas/metabolismo , Unión Proteica , Proteínas Recombinantes de Fusión/metabolismo , Proteínas de Saccharomyces cerevisiae/genética
14.
EMBO J ; 31(22): 4304-17, 2012 Nov 14.
Artículo en Inglés | MEDLINE | ID: mdl-23064152

RESUMEN

Autophagy is a conserved process for the bulk degradation of cytoplasmic material. Triggering of autophagy results in the formation of double membrane-bound vesicles termed autophagosomes. The conserved Atg5-Atg12/Atg16 complex is essential for autophagosome formation. Here, we show that the yeast Atg5-Atg12/Atg16 complex directly binds membranes. Membrane binding is mediated by Atg5, inhibited by Atg12 and activated by Atg16. In a fully reconstituted system using giant unilamellar vesicles and recombinant proteins, we reveal that all components of the complex are required for efficient promotion of Atg8 conjugation to phosphatidylethanolamine and are able to assign precise functions to all of its components during this process. In addition, we report that in vitro the Atg5-Atg12/Atg16 complex is able to tether membranes independently of Atg8. Furthermore, we show that membrane binding by Atg5 is downstream of its recruitment to the pre-autophagosomal structure but is essential for autophagy and cytoplasm-to-vacuole transport at a stage preceding Atg8 conjugation and vesicle closure. Our findings provide important insights into the mechanism of action of the Atg5-Atg12/Atg16 complex during autophagosome formation.


Asunto(s)
Autofagia , Proteínas Portadoras/metabolismo , Fagosomas/metabolismo , Proteínas de Saccharomyces cerevisiae/metabolismo , Saccharomyces cerevisiae/metabolismo , Proteína 12 Relacionada con la Autofagia , Proteína 5 Relacionada con la Autofagia , Familia de las Proteínas 8 Relacionadas con la Autofagia , Proteínas Relacionadas con la Autofagia , Transporte Biológico/fisiología , Membrana Celular/metabolismo , Proteínas Asociadas a Microtúbulos/metabolismo , Fosfatidiletanolaminas/metabolismo , Ubiquitina-Proteína Ligasas
15.
EMBO J ; 31(18): 3691-703, 2012 Sep 12.
Artículo en Inglés | MEDLINE | ID: mdl-22885598

RESUMEN

Autophagy is an intracellular trafficking pathway sequestering cytoplasm and delivering excess and damaged cargo to the vacuole for degradation. The Atg1/ULK1 kinase is an essential component of the core autophagy machinery possibly activated by binding to Atg13 upon starvation. Indeed, we found that Atg13 directly binds Atg1, and specific Atg13 mutations abolishing this interaction interfere with Atg1 function in vivo. Surprisingly, Atg13 binding to Atg1 is constitutive and not altered by nutrient conditions or treatment with the Target of rapamycin complex 1 (TORC1)-inhibitor rapamycin. We identify Atg8 as a novel regulator of Atg1/ULK1, which directly binds Atg1/ULK1 in a LC3-interaction region (LIR)-dependent manner. Molecular analysis revealed that Atg13 and Atg8 cooperate at different steps to regulate Atg1 function. Atg8 targets Atg1/ULK1 to autophagosomes, where it may promote autophagosome maturation and/or fusion with vacuoles/lysosomes. Moreover, Atg8 binding triggers vacuolar degradation of the Atg1-Atg13 complex in yeast, thereby coupling Atg1 activity to autophagic flux. Together, these findings define a conserved step in autophagy regulation in yeast and mammals and expand the known functions of LIR-dependent Atg8 targets to include spatial regulation of the Atg1/ULK1 kinase.


Asunto(s)
Proteínas Adaptadoras Transductoras de Señales/metabolismo , Autofagia , Regulación de la Expresión Génica , Péptidos y Proteínas de Señalización Intracelular/metabolismo , Proteínas de Microfilamentos/metabolismo , Proteínas Serina-Treonina Quinasas/metabolismo , Familia de las Proteínas 8 Relacionadas con la Autofagia , Homólogo de la Proteína 1 Relacionada con la Autofagia , Proteínas Relacionadas con la Autofagia , Secuencia de Bases , Células HEK293 , Humanos , Diana Mecanicista del Complejo 1 de la Rapamicina , Modelos Genéticos , Datos de Secuencia Molecular , Complejos Multiproteicos , Mutación , Unión Proteica , Isoformas de Proteínas , Proteínas/metabolismo , Homología de Secuencia de Ácido Nucleico , Serina-Treonina Quinasas TOR , Vacuolas/metabolismo
16.
EMBO Rep ; 15(8): 862-70, 2014 Aug.
Artículo en Inglés | MEDLINE | ID: mdl-24968893

RESUMEN

Autophagy is the major pathway for the delivery of cytoplasmic material to the vacuole or lysosome. Selective autophagy is mediated by cargo receptors, which link the cargo to the scaffold protein Atg11 and to Atg8 family proteins on the forming autophagosomal membrane. We show that the essential kinase Hrr25 activates the cargo receptor Atg19 by phosphorylation, which is required to link cargo to the Atg11 scaffold, allowing selective autophagy to proceed. We also find that the Atg34 cargo receptor is regulated in a similar manner, suggesting a conserved mechanism.


Asunto(s)
Quinasa de la Caseína I/fisiología , Receptores de Superficie Celular/metabolismo , Proteínas de Saccharomyces cerevisiae/metabolismo , Proteínas de Saccharomyces cerevisiae/fisiología , Saccharomyces cerevisiae/enzimología , Proteínas de Transporte Vesicular/metabolismo , Secuencia de Aminoácidos , Autofagia , Proteínas Relacionadas con la Autofagia , Datos de Secuencia Molecular , Fosforilación , Unión Proteica , Dominios y Motivos de Interacción de Proteínas , Procesamiento Proteico-Postraduccional , Transporte de Proteínas , Receptores de Superficie Celular/química , Receptores Citoplasmáticos y Nucleares/metabolismo , Proteínas de Saccharomyces cerevisiae/química , Proteínas de Transporte Vesicular/química
17.
EMBO J ; 30(16): 3274-84, 2011 Jul 08.
Artículo en Inglés | MEDLINE | ID: mdl-21743437

RESUMEN

Protein ubiquitylation is a key process in the regulation of many cellular processes. The balance between the activity of ubiquitin ligases and that of proteases controls the level of ubiquitylation. In response to extracellular stimuli, stress-activated protein kinases (SAPK) modulate gene expression to maximize cell survival. In yeast, the Hog1 SAPK has a key role in reprogramming the gene expression pattern required for cell survival upon osmostress. Here, we show that the Ubp3 ubiquitin protease is a target for the Hog1 SAPK to modulate gene expression. ubp3 mutant cells are defective in expression of osmoresponsive genes. Hog1 interacts with and phosphorylates Ubp3 at serine 695, which is essential to determine the extent of transcriptional activation in response to osmostress. Furthermore, Ubp3 is recruited to osmoresponsive genes to modulate transcriptional initiation as well as elongation. Therefore, Ubp3 activity responds to external stimuli and is required for transcriptional activation upon osmostress.


Asunto(s)
Endopeptidasas/fisiología , Regulación Fúngica de la Expresión Génica , Proteínas Quinasas Activadas por Mitógenos/fisiología , Procesamiento Proteico-Postraduccional , Proteínas de Saccharomyces cerevisiae/fisiología , Transcripción Genética , Activación Transcripcional , Endopeptidasas/biosíntesis , Endopeptidasas/genética , Eliminación de Gen , Sistema de Señalización de MAP Quinasas , Presión Osmótica/fisiología , Fosforilación , ARN Polimerasa II/metabolismo , ARN de Hongos/biosíntesis , ARN de Hongos/genética , ARN Mensajero/biosíntesis , ARN Mensajero/genética , Proteínas Recombinantes de Fusión/fisiología , Proteínas de Saccharomyces cerevisiae/biosíntesis , Proteínas de Saccharomyces cerevisiae/genética , Proteínas de Saccharomyces cerevisiae/metabolismo , Ubiquitinación
18.
Yeast ; 32(3): 355-65, 2015 Mar.
Artículo en Inglés | MEDLINE | ID: mdl-25582094

RESUMEN

Methylation tracking (M-Track) is a protein-proximity assay in Saccharomyces cerevisiae, allowing the detection of transient protein-protein interactions in living cells. The bait protein is fused to a histone lysine methyl transferase and the prey protein to a methylation acceptor peptide derived from histone 3. Upon interaction, the histone 3 fragment is stably methylated on lysine 9 and can be detected by methylation-specific antibodies. Since methylation marking is irreversible in budding yeast and only takes place in living cells, the occurrence of artifacts during cell lysate preparation is greatly reduced, leading to a more accurate representation of native interactions. So far, this method has been limited to highly abundant or overexpressed proteins. However, many proteins of interest are low-abundant, and overexpression of proteins may interfere with their function, leading to an artificial situation. Here we report the generation of a toolbox including a novel cleavage-enrichment system for the analysis of very low-abundant proteins at their native expression levels. In addition, we developed a system for the parallel analysis of two prey proteins in a single cell, as well as an inducible methylation system. The inducible system allows precise control over the time during which the interaction is detected and can be used to determine interaction kinetics. Furthermore, we generated a set of constructs facilitating the cloning-free genomic tagging of proteins at their endogenous locus by homologous recombination, and their expression from centromeric plasmids.


Asunto(s)
Mapeo de Interacción de Proteínas/métodos , Proteínas de Saccharomyces cerevisiae/metabolismo , Saccharomyces cerevisiae/metabolismo , Datos de Secuencia Molecular , Unión Proteica , Saccharomyces cerevisiae/genética , Proteínas de Saccharomyces cerevisiae/genética
19.
FEBS Lett ; 598(1): 73-83, 2024 01.
Artículo en Inglés | MEDLINE | ID: mdl-37585559

RESUMEN

Macroautophagy, hereafter referred to as autophagy, is a complex process in which multiple membrane-remodeling events lead to the formation of a cisterna known as the phagophore, which then expands and closes into a double-membrane vesicle termed the autophagosome. During the past decade, enormous progress has been made in understanding the molecular function of the autophagy-related proteins and their role in generating these phagophores. In this Review, we discuss the current understanding of three membrane remodeling steps in autophagy that remain to be largely characterized; namely, the closure of phagophores, the maturation of the resulting autophagosomes into fusion-competent vesicles, and their fusion with vacuoles/lysosomes. Our review will mainly focus on the yeast Saccharomyces cerevisiae, which has been the leading model system for the study of molecular events in autophagy and has led to the discovery of the major mechanistic concepts, which have been found to be mostly conserved in higher eukaryotes.


Asunto(s)
Autofagosomas , Proteínas de Saccharomyces cerevisiae , Autofagosomas/metabolismo , Saccharomyces cerevisiae/genética , Saccharomyces cerevisiae/metabolismo , Macroautofagia , Proteínas de Saccharomyces cerevisiae/genética , Proteínas de Saccharomyces cerevisiae/metabolismo , Vacuolas/metabolismo , Autofagia/genética , Proteínas Relacionadas con la Autofagia/genética , Proteínas Relacionadas con la Autofagia/metabolismo
20.
J Mol Biol ; 436(15): 168588, 2024 Aug 01.
Artículo en Inglés | MEDLINE | ID: mdl-38663545

RESUMEN

ATG8 proteins form a family of small ubiquitin-like modifiers, well-known for their importance in both macroautophagy and autophagy-independent processes. A unique feature of this protein family is their conjugation to membrane lipids through the covalent attachment of a glycine residue at the C-terminus of ATG8 proteins. Notably, most ATG8 proteins are expressed with additional amino acids at their C-terminus, shielding the key glycine residue. Consequently, lipidation requires the activation of the ATG8 precursors through proteolytic cleavage, known as priming. ATG4 proteases catalyze this priming process, and under physiological conditions, unprimed forms of ATG8 are not detected. This raises the question about the purpose of the C-terminal extension of ATG8 proteins. While the roles of lipidated and free, primed ATG8 proteins have been extensively studied, the potential function of their precursor form or the priming process itself remains largely unexplored. Here, we summarize information from existing literature and our own experiments to contribute to the understanding of these neglected amino acids.


Asunto(s)
Aminoácidos , Familia de las Proteínas 8 Relacionadas con la Autofagia , Glicina , Familia de las Proteínas 8 Relacionadas con la Autofagia/metabolismo , Familia de las Proteínas 8 Relacionadas con la Autofagia/genética , Familia de las Proteínas 8 Relacionadas con la Autofagia/química , Glicina/metabolismo , Glicina/química , Aminoácidos/metabolismo , Autofagia , Humanos
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